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Reynolds Boundary Condition Approximation in Journal Bearings Based on Dynamic Mesh Method

机译:基于动态网格方法的轴颈轴承雷诺边界条件近似

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This paper proposed a new approach to Reynolds boundary condition approximation in journal bearing CFD analysis. Dynamic mesh method was applied to approach the location where the rupture of oil film or cavitation started. A numerical model of half bearing geometry was constructed to obtain the Half-Sommerfeld solution. Using the solution, a pseudo-transient analysis was subsequently conducted. The boundary at the minimum film thickness was treated as the moving boundary. The Reynolds boundary condition was satisfied at a certain point when the pressure derivative of boundary nodes approached zero over the course of mesh growth. The analytical results were compared against the results of published works. It was discovered that the resulting cavitation angle and oil film pressure were consistent with those obtained by taking the Reynolds equation approach, with only slight differences observed from those obtained via the cavitation experiments and models. The proposed method is an extension of Reynolds boundary condition according to the CFD approach. It is considered an alternative to other cavitation models intended for journal bearings.
机译:本文提出了一种新的轴承CFD分析中的reynolds边界条件近似的方法。动态网格方法用于接近油膜或空化破裂的位置。构造了一半轴承几何形状的数值模型以获得半躯体菲尔德解决方案。使用该解决方案,随后进行伪瞬态分析。最小膜厚度的边界被视为移动边界。当边界节点的压力导数在网格生长过程中接近零时,在某个点处满足雷诺边界条件。将分析结果与已发表作品的结果进行比较。发现得到的空化角度和油膜压力与通过采取雷诺等式方法获得的那些符合,只有通过空化实验和模型获得的那些观察到的微小差异。所提出的方法是根据CFD方法的雷诺边界条件的延伸。它被认为是用于轴颈轴承的其他空化模型的替代方案。

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